← All decks

Radiology

Ultrasound Physics for the Clinician

Built from Obstetric Imaging

The first 25 slides of Ultrasound Physics for the Clinician
The first 25 slides, exactly as they appear. The full deck has 64 content slides.

What’s inside

7 sections · 64 slides

  1. 01

    Overview

    • Scope of this topic
    • Components of an imaging system
    • The six components in an ultrasound scanner

    3 slides

  2. 02

    The ultrasound pulse

    The stimulus: what the probe actually sends into the body

    • Nature of the ultrasound pulse
    • Compression and rarefaction
    • Longitudinal and transverse waves
    • Amplitude and frequency of the pulse
    • 20 Hz – 20 kHz
    • Why the prefix ultra-
    • Volume occupied by the ultrasound pulse
    • Propagation of the ultrasound pulse from the transducer
    • Reading the pulse propagation diagram
    • Axial, lateral, and elevational dimensions
    • Beam geometry and the focus

    11 slides

  3. 03

    The body as an acoustic object

    What the pulse meets once it is inside the patient

    • Acoustic impedance
    • Sound speed in soft tissue
    • 1750 m/s

    3 slides

  4. 04

    The echo

    The response: how tissue answers the pulse, and what dims that answer

    • Origin of the echo
    • Factors that set echo amplitude
    • Reflection from large interfaces
    • Coupling gel and the acoustic window
    • Scattering from tissue microstructure
    • Reflection compared with scattering
    • Formation of speckle
    • Speckle texture on a clinical scan
    • Echogenicity and its descriptive terms
    • Darker and brighter regions side by side
    • Attenuation
    • Causes of attenuation
    • Decibels and typical attenuation values
    • Time-gain compensation
    • Detector sensitivity and echo amplitude

    15 slides

  5. 05

    Making the image

    Transducer, pulse-echo listening, and building the B-mode picture

    • The ultrasound transducer
    • Piezoelectric elements and the array
    • Ultrasound transducer contact face
    • The aperture and pulse-echo listening
    • Converting echo arrival time into depth
    • Formation of a B-mode image
    • Echo signal along a single scan line
    • Grey-scale B-mode image built from many scan lines
    • Building the B-mode image line by line
    • Array type and image geometry
    • Linear, curvilinear, and phased arrays
    • Electronic delays in a phased array

    12 slides

  6. 06

    Image quality and its trade-offs

    Spatial, temporal, and contrast resolution — and what each one costs

    • Three primary determinants of image quality
    • Spatial resolution
    • Frequency and spatial resolution
    • Resolution versus penetration
    • Choosing a transducer for the depth of interest
    • Practical consequence of the frequency trade-off
    • Temporal resolution
    • Contrast resolution
    • Cost of noise averaging

    9 slides

  7. 07

    Safety and the ALARA principle

    What the referring physician needs to know about acoustic energy

    • Acoustic energy deposition in tissue
    • The ALARA principle
    • From pulse to picture
    • Key points
    • Vocabulary to carry away
    • References
    • References (continued)
    • References (continued)
    • Suggested readings
    • Obstetric Imaging: Fetal Diagnosis and Care, 2nd Edition

    11 slides